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Anharmonic effects in IR, Raman, and Raman optical activity spectra of alanine and proline zwitterions

机译:丙氨酸和脯氨酸两性离子在红外,拉曼和拉曼光学活性谱中的非谐效应

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The difference spectroscopy of the Raman optical activity (ROA) provides extended information about molecular structure. However, interpretation of the spectra is based on complex and often inaccurate simulations. Previously, the authors attempted to make the calculations more robust by including the solvent and exploring the role of molecular flexibility for alanine and proline zwitterions. In the current study, they analyze the IR, Raman, and ROA spectra of these molecules with the emphasis on the force field modeling. Vibrational harmonic frequencies obtained with 25 ab initio methods are compared to experimental band positions. The role of anharmonic terms in the potential and intensity tensors is also systematically explored using the vibrational self-consistent field, vibrational configuration interaction (VCI), and degeneracy-corrected perturbation calculations. The harmonic approach appeared satisfactory for most of the lower-wavelength (200-1800 cm(-1)) vibrations. Modern generalized gradient approximation and hybrid density functionals, such as the common B3LYP method, provided a very good statistical agreement with the experiment. Although the inclusion of the anharmonic corrections still did not lead to complete agreement between the simulations and the experiment, occasional enhancements were achieved across the entire region of wave numbers. Not only the transitional frequencies of the C-H stretching modes were significantly improved but also Raman and ROA spectral profiles including N-H and C-H lower-frequency bending modes were more realistic after application of the VCI correction. A limited Boltzmann averaging for the lowest-frequency modes that could not be included directly in the anharmonic calculus provided a realistic inhomogeneous band broadening. The anharmonic parts of the intensity tensors (second dipole and polarizability derivatives) were found less important for the entire spectral profiles than the force field anharmonicities (third and fourth energy derivatives), except for a few weak combination bands which were dominated by the anharmonic tensor contributions. (c) 2007 American Institute of Physics.
机译:拉曼光学活性(ROA)的差异光谱学提供了有关分子结构的扩展信息。但是,光谱的解释是基于复杂且通常不准确的模拟。以前,作者试图通过包含溶剂并探索分子柔韧性对丙氨酸和脯氨酸两性离子的作用来使计算更可靠。在当前的研究中,他们分析了这些分子的IR,拉曼和ROA光谱,重点是力场建模。将使用25 ab initio方法获得的振动谐波频率与实验频段位置进行比较。还使用振动自洽场,振动构型相互作用(VCI)和简并校正的扰动计算系统地探索了非谐项在势和强度张量中的作用。对于大多数较低波长(200-1800 cm(-1))的振动,谐波方法似乎令人满意。现代的广义梯度逼近和混合密度泛函,例如常用的B3LYP方法,与实验提供了很好的统计一致性。尽管包含非谐波校正仍不能使模拟与实验完全一致,但偶尔会在整个波数区域实现增强。应用VCI校正后,不仅C-H拉伸模式的过渡频率得到了显着改善,而且包括N-H和C-H低频弯曲模式在内的拉曼光谱和ROA光谱图更加逼真。不能直接包含在非谐波演算中的最低频率模式的有限Boltzmann平均提供了现实的不均匀频带展宽。发现强度张量的非谐部分(第二偶极子和极化率导数)对整个光谱分布的影响不如力场非谐性(第三和第四能量导数)重要,除了一些弱的组合带(由非谐张量主导)贡献。 (c)2007年美国物理研究所。

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